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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Effect of initial gamma/gamma ' microstructure on creep of single crystal nickel-based superalloys: A phase-field simulation incorporating dislocation dynamics
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Effect of initial gamma/gamma ' microstructure on creep of single crystal nickel-based superalloys: A phase-field simulation incorporating dislocation dynamics

机译:初始γ/γ'微观结构对单晶镍高超合金蠕变的影响:一种结合位错动态的相场模拟

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摘要

The initial gamma/gamma' microstructure (e.g. gamma' shape, size, volume fraction) may dramatically affect creep behaviour of single crystal Nickel-based superalloys. However, it is difficult to have accurate control on each of these initial aspects and to understand the role of each by experimental methods. In the present work, a novel coupled model of phase-field and continuum dislocation dynamics is developed for the co-evolution of gamma/gamma' and dislocation microstructures, such that the creep deformation of single crystal Nickel-based superalloys can be described in a physical way. The creep curve can be directly obtained by averaging dislocation activity, without any phenomenological effort that is needed for traditional constitutive models. With the coupled model, we study the effect of initial gamma/gamma' microstructure on creep of single crystal Nickel-based superalloys. The role of initial gamma' shape is studied by comparing simulations with different initial gamma' shapes but with the same gamma' size and volume fraction. The role of initial gamma' size and volume fraction are studied in the same methodology. Simulation results show that as the gamma/gamma' misfit magnitude increases, the gamma' shape transits from circular to cubic and the dislocation microstructure symmetry shifts. The cubic gamma' shape corresponding to gamma/gamma' misfit of -0.003 is the most beneficial for creep resistance, compare with gamma/gamma' misfit of -0.0015 and 0. Bigger gamma' size and higher gamma' volume fraction also result in better creep resistance, especially the benefit of high gamma' volume fraction to creep resistance is dramatic. The simulation results may bring inspirations for design of new single crystal Nickel-based superalloys with excellent creep resistance. (C) 2018 Elsevier B.V. All rights reserved.
机译:初始伽马/伽马“微观结构(例如伽马”的形状,大小,体积分数)可以显着地影响单晶镍基超耐热合金的蠕变行为。然而,这是很难有关于这些初始方面的准确控制和了解每一个通过实验方法的作用。另外,在本工作中,相场和连续位错动力学的新颖耦合模型伽马/伽马”和位错的微结构,的共同进化开发,使得单晶镍基超耐热合金的蠕变变形可以在描述物理方法。蠕变曲线可以通过平均错位活动直接获得,而没有需要对传统的本构模型的任何现象的努力。与耦合模型中,我们研究初始伽马/伽马”微结构对单晶镍基超耐热合金的蠕变的影响。初始伽马的作用的形状,但具有相同的γ”尺寸和体积分数“的形状由具有不同初始伽马比较模拟研究”。初始伽马”尺寸和体积分数的作用进行了研究,同样的方法。仿真结果表明,作为伽马/伽马“失配幅值增加时,伽马”形转变从圆形到立方和位错的微结构对称性的变化。失配的-0.003立方伽马“对应的γ/γ位形状”是最有益的抗蠕变性,用γ/伽马“的失配-0.0015 0和更大的γ”尺寸和更高的γ”体积分数比较还导致更好的的抗蠕变性,尤其是高伽马的益处”体积分数的抗蠕变性是显着的。仿真结果可能带来的启示具有优良的抗蠕变性的新的镍基单晶超合金的设计。 (c)2018年elestvier b.v.保留所有权利。

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